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- W221226514 abstract "The classical model for droplet combustion predicts that the square of the droplet diameter decreases linearly with time. It also predicts that a droplet of any size will burn to completion over a period of time. However, it has been known for some time that under certain conditions flames surrounding a droplet, in a quiescent environment, could extinguish because of insufficient residence time for the chemistry to proceed to completion. This type of that occurs for smaller droplets has been studied extensively in the past. Large droplets, on the other hand, exhibit a different type of where excessive heat loss from the flame zone leads to extinction. This mode of radiative extinction was theoretically predicted for droplet burning by Chao et al. and was observed in recent space experiments in a quiescent environment. Thus far, the fundamental flammability limit prescribed by of liquid droplets has been measured only under quiescent environmental conditions. In many space platforms, however, ventilation systems produce small convective flows and understanding of the influences of this convection on the process will help better define the flammability boundaries. Boundaries defined by experiments and captured using theoretical models could provide enhanced fire safety margin in space explor1999063d investigation of convective effects will help in interpretations of burning-rate data obtained during free-floated droplet combustion experiments with small residual velocities." @default.
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- W221226514 date "1999-05-01" @default.
- W221226514 modified "2023-09-26" @default.
- W221226514 title "Dynamics of Droplet Extinction in Slow Convective Flows" @default.
- W221226514 hasPublicationYear "1999" @default.
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